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PdPt Bimetal-Functionalized SnO2 Nanosheets: Controllable Synthesis and its Dual Selectivity for Detection of Carbon Monoxide and Methane

机译:PDPT双金属官能化SnO2纳米蛋白酶:可控合成及其检测一氧化碳和甲烷的双重选择性

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摘要

Bimetallic nanoparticles (NPs) usually exhibit some novel properties due to the synergistic effects of the two distinct metals, which is expected to play an important role in the field of gas sensing. PdPt bimetal NPs with Pd-rich shell and Pt-rich core were successfully synthesized and used to modify SnO2 nanosheets. The 1P-PdPt/SnO2-A sensor obtained by self-assemblies of PdPt NPs exhibited temperature-dependent dual selectivity to CO at 100 degrees C and CH4 at 320 degrees C. Furthermore, the sensor possessed good long term stability and antihumidity interference. The activation energy of adsorption for CO and CH4 were estimated by the temperature-dependent response process modeled using Langmuir adsorption kinetics, which proved that the lower activation energy of adsorption corresponded to better sensing performance. The gas-sensing mechanism based on the diffusion depth of the tested gas in the sensing layer was discussed. The dramatically improved sensing performance could be ascribed to the high catalytic activity of PdPt bimetal, the electron sensitization of PdO, and Schottky barrier-type junctions at the interface between SnO2 and PdPt NPs. Our present results demonstrate that bimetal NPs with special structure and components can significantly improve the gas-sensing performance of metal oxide semiconductor and the obtained sensor has great potential in monitoring coal mine gas.
机译:双金属纳米颗粒(NPS)通常表现出一些新的性质,这是两个不同金属的协同效应,预计在气体传感领域中起着重要作用。 PDPT双金属NPS具有富含PD的壳体和富含PT的核心,并用于修改SNO2纳米液。通过PDPT NP的自组装获得的1P-PDPT / SNO2-A传感器在320℃下以100摄氏度和CH 4在100℃和CH 4上表现出温度依赖性的双重选择性。此外,传感器具有良好的长期稳定性和抗叠延迟干扰。通过使用Langmuir吸附动力学建模的温度依赖性响应方法估计CO和CH4的吸附活化能量,这证明了吸附的较低激活能量对应于更好的感测性能。讨论了基于感测层中测试气体的扩散深度的气体传感机构。显着改善的感测性能可以归因于PDPT双金属的高催化活性,PDO的电子敏化和SnO2和PDPT NP之间的界面处的肖特基屏障型结。我们现在的结果表明,具有特殊结构和部件的双金属NP可以显着提高金属氧化物半导体的气体传感性能,并且所获得的传感器在监测煤矿气体中具有很大的潜力。

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